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The Roles of Amphibian () Macrophages During Chronic Frog Virus 3 Infections

Overview
Journal Viruses
Publisher MDPI
Specialty Microbiology
Date 2021 Nov 27
PMID 34835105
Citations 5
Authors
Affiliations
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Abstract

Infections by Frog Virus 3 (FV3) and other ranavirus genus members are significantly contributing to global amphibian decline. The frog is an ideal research platform upon which to study the roles of distinct frog leukocyte populations during FV3 infections. Frog macrophages (MΦs) are integrally involved during FV3 infection, as they facilitate viral dissemination and persistence but also participate in immune defense against this pathogen. In turn, MΦ differentiation and functionality depend on the colony-stimulating factor-1 receptor (CSF-1R), which is ligated by CSF-1 and iterleukin-34 (IL-34) cytokines. Our past work indicated that CSF-1 and IL-34 give rise to morphologically and functionally distinct frog MΦ subsets, and that these CSF-1- and IL-34-MΦs respectively confer susceptibility and antiviral resistance to FV3. Because FV3 targets the frog kidneys and establishes chronic infections therein, presently we examined the roles of the frog CSF-1- and IL-34-MΦs in seeding and maintaining these chronic kidney infections. Our findings indicate that the frog CSF-1-MΦs result in more prominent kidney FV3 infections, which develop into greater reservoirs of lingering FV3 marked by infiltrating leukocytes, fibrosis, and overall immunosuppressive states. Moreover, the antiviral effects of IL-34-MΦs are short-lived and are lost as FV3 infections progress.

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References
1.
Grayfer L, Robert J . Amphibian macrophage development and antiviral defenses. Dev Comp Immunol. 2015; 58:60-7. PMC: 4775336. DOI: 10.1016/j.dci.2015.12.008. View

2.
Pluddemann A, Mukhopadhyay S, Gordon S . Innate immunity to intracellular pathogens: macrophage receptors and responses to microbial entry. Immunol Rev. 2011; 240(1):11-24. DOI: 10.1111/j.1600-065X.2010.00989.x. View

3.
Duffus A, Pauli B, Wozney K, Brunetti C, Berrill M . Frog virus 3-like infections in aquatic amphibian communities. J Wildl Dis. 2008; 44(1):109-20. DOI: 10.7589/0090-3558-44.1.109. View

4.
Morales H, Abramowitz L, Gertz J, Sowa J, Vogel A, Robert J . Innate immune responses and permissiveness to ranavirus infection of peritoneal leukocytes in the frog Xenopus laevis. J Virol. 2010; 84(10):4912-22. PMC: 2863837. DOI: 10.1128/JVI.02486-09. View

5.
Nandi S, Akhter M, Seifert M, Dai X, Stanley E . Developmental and functional significance of the CSF-1 proteoglycan chondroitin sulfate chain. Blood. 2005; 107(2):786-95. PMC: 1895624. DOI: 10.1182/blood-2005-05-1822. View